Production equipment and production method of a storage battery

By designing automated battery production equipment, the problem of low panel diaphragm wrapping efficiency in traditional battery production is solved, and efficient automated production is achieved.

CN119560617BActive Publication Date: 2025-06-13YANGZHOU GOLDEN JOY POWER SUPPLY CO LTD
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Patent Information

Application Number
CN202510137567.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-07
Publication Date
2025-06-13
Estimated Expiration
2045-02-07

AI Technical Summary

Technical Problem

In traditional battery production, the panel diaphragm wrapping efficiency is low and requires manual operation, resulting in slower production efficiency.

Method used

A battery production equipment including a transmission mechanism, a press-transmission mechanism, a traction device, a cutting mechanism, a feeding device, a bias correction mechanism and a stacking mechanism is designed to realize the membrane wrapping and stacking of the battery panels through an automated process.

Benefits of technology

Through automated production processes, the processing efficiency of the battery is significantly improved, manual operation is reduced, and automatic coating and stacking of the battery panel is realized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a production device for a storage battery and a production method thereof, specifically relating to the technical field of storage battery production. The device includes a base, on one side of the top of the base, a transmission mechanism and a pressing and transmission mechanism are successively and fixedly installed. A traction device is arranged between the transmission mechanism and the pressing and transmission mechanism. A stacking mechanism is arranged at one end of the pressing and transmission mechanism away from the transmission mechanism. A feeding device is arranged on one side of the base away from the pressing and transmission mechanism. A cutting mechanism is arranged on the traction device. A deviation rectifying mechanism is arranged on one side of the transmission mechanism close to the pressing and transmission mechanism. A limiting plate is fixedly installed on one side of the top of the base close to the end of the feeding device. The traction device includes two traction mechanisms symmetrically distributed. In the present invention, by setting the traction device and cooperating with the use of the transmission mechanism, the pressing and transmission mechanism and the cutting mechanism, the diaphragm is continuously and automatically transmitted, automatically cut, and the battery plate is automatically coated, improving the overall processing efficiency of the storage battery.
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Description

Technical Field

[0001] The present invention relates to the technical field of battery production, and specifically provides a production device and a production method for a battery. Background Art

[0002] A battery is a device that can store electrical energy and release it when needed. It stores electrical energy by means of an electrochemical reaction and then converts chemical energy back into electrical energy during discharge. There are mainly lead-acid batteries, lithium-ion batteries, nickel-metal hydride batteries, and solid-state batteries, which are widely used in transportation, electronic products, energy storage systems, industry, and medical equipment.

[0003] When a battery is being produced, the battery plate needs to be wrapped with a separator. Most traditional battery plate separator wrappings are done manually. The battery plate is placed in a separator of a suitable size and folded for wrapping. Subsequently, the positive and negative electrodes of adjacent battery plates are assembled in a staggered manner manually, and the efficiency is relatively low. For this reason, we propose a production device and a production method for a battery to solve the above problems. Summary of the Invention

[0004] The purpose of the present invention is to provide a production device and a production method for a battery to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: A production device for a battery, including a base. On one side of the top of the base, a transmission mechanism and a pressure transmission mechanism are sequentially and fixedly installed. A traction device is arranged between the transmission mechanism and the pressure transmission mechanism. A stacking mechanism is arranged at one end of the pressure transmission mechanism away from the transmission mechanism. A feeding device is arranged on the side of the base away from the pressure transmission mechanism. A cutting mechanism is arranged on the traction device. A deviation correction mechanism is arranged on the side of the transmission mechanism close to the pressure transmission mechanism. A limiting plate is fixedly installed on one side of the top of the base close to the end of the feeding device;

[0006] The traction device includes two traction mechanisms symmetrically distributed. Each traction mechanism includes a traction longitudinal frame fixedly installed on the top of the base. Traction shafts are rotatably installed at the top and middle of the traction longitudinal frame. A traction sprocket is fixedly installed in the middle of the traction shaft. A traction chain is meshed and connected between the two traction sprockets. A first motor is fixedly installed on the top of the traction longitudinal frame. The driving end of the first motor is fixedly installed with one end of the traction shaft. A plurality of positioning members are evenly distributed on the traction chain;

[0007] The positioning member includes a mounting frame. The positioning member is fixedly installed on the traction chain through the mounting frame. A limiting shaft is fixedly installed in the middle of the mounting frame. A limiting ring groove corresponding to the limiting shaft is formed inside the traction vertical frame. The end of the limiting shaft is movably clamped in the corresponding limiting ring groove. A positioning outer frame is fixedly installed on the side of the mounting frame away from the traction chain. A positioning clamp is slidably clamped in the positioning outer frame. An internal screw cylinder is rotatably installed on the side of the positioning outer frame close to the positioning clamp. A threaded rod is threadedly installed in the middle of the internal screw cylinder. One end of the threaded rod is fixedly installed with the positioning clamp. A transmission gear ring is fixedly installed at the end of the internal screw cylinder away from the positioning outer frame. A first rack for cooperating with the transmission gear ring is provided at the top of the opposite sides of the two traction mechanisms. A first frame is fixedly installed on the outer side of the first rack. The first frame is fixedly installed on the outer side of the corresponding traction vertical frame. The outer side of the first rack can be meshed and connected with the transmission gear ring in the corresponding positioning member. A second rack for cooperating with the transmission gear ring is provided at the bottom of the opposite sides of the two traction mechanisms. A second frame is fixedly installed on the outer side of the second rack. The second frame is fixedly installed on the outer side of the corresponding traction vertical frame. The inner side of the second rack can be meshed and connected with the transmission gear ring in the corresponding positioning member.

[0008] As a preferred technical solution of the present invention, the cutting mechanism includes two symmetrically distributed cylinder frames. The two ends of the cylinder frame are respectively fixedly installed on the outer tops of the traction vertical frames in the two traction mechanisms. A telescopic cylinder is fixedly installed on the cylinder frame. A cutting tool holder is fixedly installed at the driving end of the telescopic cylinder. An auxiliary vertical frame is fixedly installed at the bottom end of one of the cylinder frames. A blowing device is fixedly installed at the bottom of the auxiliary vertical frame.

[0009] As a preferred technical solution of the present invention, the transmission mechanism includes two groups of first vertical frames and one group of second vertical frames. The first vertical frames are fixedly installed at the top end of the base. The second vertical frame is located between the two groups of first vertical frames. The second vertical frame is fixedly installed at the top end of the base close to the pressure transmission mechanism. A first transmission roller is rotatably installed on the first vertical frame. A first transmission belt is movably sleeved on the outer sides of the two first transmission rollers. A second transmission roller is rotatably installed on the first vertical frame and the second vertical frame at the position close to the pressure transmission mechanism. A second transmission belt is movably sleeved on the outer sides of the two second transmission rollers. The second transmission belt is located above the first transmission belt. First gears are fixedly installed at the ends of the first transmission roller and the second transmission roller at the position close to the pressure transmission mechanism. The two first gears are meshed and connected.

[0010] As a preferred technical solution of the present invention, the pressure transmission mechanism includes two groups of third longitudinal frames, the third longitudinal frames are fixedly installed at the top of the base, two third transmission rollers are rotatably installed at the top of each third longitudinal frame, and third transmission belts are movably sleeved on the outer sides of the two horizontally corresponding third transmission rollers. A second gear is fixedly installed at the end of one group of vertically corresponding third transmission rollers, and the two second gears are meshed and connected.

[0011] As a preferred technical solution of the present invention, the stacking mechanism includes two groups of fourth longitudinal frames symmetrically distributed, the fourth longitudinal frames are fixedly installed at the top of the base, fourth transmission rollers are rotatably installed at the top of each fourth longitudinal frame, and fourth transmission belts are movably sleeved on the outer sides of the fourth transmission rollers at the same side position in the two groups of fourth longitudinal frames. The fourth transmission belts are located below the third transmission belts.

[0012] As a preferred technical solution of the present invention, the stacking mechanism further includes two lifting electric rails symmetrically distributed. The lifting electric rails are fixedly installed at one end of the top of the base away from the transmission mechanism. A fixed frame is fixedly installed at the driving end of the lifting electric rails, and a stacking frame is fixedly installed on the fixed frame. The stacking frame is located between the two fourth transmission belts. A first co-driving shaft is fixedly installed between the two fourth transmission rollers at the position away from the side of the lifting electric rail.

[0013] As a preferred technical solution of the present invention, a third motor is fixedly installed on the first longitudinal frame at the position close to the pressure transmission mechanism. The driving end of the third motor is fixedly installed with one end of the corresponding first transmission roller. A first pulley transmission group is provided between a group of adjacent second transmission rollers and third transmission rollers. The first pulley transmission group includes two first pulleys and a first belt movably sleeved on the outer sides of the two first pulleys. The two first pulleys are respectively fixedly installed at the ends of the second transmission roller and the third transmission roller. A second pulley transmission group is provided between the third transmission roller at the top position and one of the fourth transmission rollers. The second pulley transmission group includes two second pulleys and a second belt movably sleeved on the outer sides of the two second pulleys. The two second pulleys are respectively fixedly installed at the ends of the corresponding third transmission roller and fourth transmission roller.

[0014] As a preferred technical solution of the present invention, the feeding device includes two feeding mechanisms. Each feeding mechanism includes two groups of fifth longitudinal frames symmetrically distributed. The feeding mechanism is fixedly installed at the top of the base through the fifth longitudinal frames. At the top of each fifth longitudinal frame, a fifth transmission roller is rotatably installed. A fifth transmission belt is movably sleeved outside the two fifth transmission rollers. The fifth transmission belt and the first transmission belt are vertically distributed. A second co-driving shaft is arranged between the two feeding mechanisms. The two ends of the second co-driving shaft are respectively fixedly installed with one end of the fifth transmission roller in the corresponding feeding mechanism. On the top of one of the fifth longitudinal frames, a fourth motor is fixedly installed. The driving end of the fourth motor is fixedly installed with one end of the corresponding fifth transmission roller.

[0015] As a preferred technical solution of the present invention, the deviation rectifying mechanism includes two mechanism side frames symmetrically distributed. The mechanism side frames are fixedly installed at the top of the base. The first transmission belt is located between the two mechanism side frames. At the top of each mechanism side frame, a telescopic rod is fixedly installed. The driving ends of the telescopic rods are respectively fixedly installed with a deviation rectifying frame. The two deviation rectifying frames are symmetrically distributed.

[0016] A production method of a production device for storage batteries includes the following steps:

[0017] Step 1: Pass the end of the cylindrical diaphragm through between the transmission mechanism and the press-transmission mechanism, and place the diaphragm between the two traction mechanisms. Place the battery plates placed in the front and back respectively on the fifth transmission belts in the corresponding fifth transmission rollers.

[0018] Step 2: Control to start the fourth motor to drive the fifth transmission roller to rotate. With the transmission of the second co-driving shaft, synchronously drive the fifth transmission belts on both sides to perform stable transmission. Through the limitation of the limiting plate, sequentially transmit the battery plates placed in the front and back to the first transmission belt for transmission.

[0019] Transmit the battery plates placed in the front and back on the first transmission belt to between the two deviation rectifying frames on both sides. By controlling to start the telescopic rod to drive the deviation rectifying frame to translate, correct the positions of the battery plates placed in the front and back, and move the battery plates placed in the front and back to the middle position of the first transmission belt.

[0020] Step 3: Control to start the third motor to drive the first transmission roller to rotate. With the meshing connection of the two first gears, drive the corresponding second transmission roller to rotate in the reverse direction. Then control the first transmission belt and the second transmission belt to synchronously transmit in the reverse direction. While the second transmission roller rotates, with the transmission of the first pulley transmission group, drive the third transmission roller to rotate synchronously. With the meshing connection of the two second gears, drive the upper and lower third transmission belts to synchronously transmit in the reverse direction. While the third transmission roller rotates, with the transmission of the second pulley transmission group, control the fourth transmission roller to rotate synchronously. Then control the fourth transmission belt to perform transmission.

[0021] Step 4: Control the first motor on both sides of the traction mechanism to drive the traction shaft and the traction sprocket to rotate, thereby driving the traction chain to transmit, and further controlling multiple positioning members to perform cyclic and stable transmission;

[0022] When one of the positioning members is transmitted to the position of the first rack, the diaphragm is placed between the positioning outer frame and the positioning clamp of the positioning member. Continue to control the transmission of the positioning member. The transmission gear ring meshes with the first rack, and the first rack drives the transmission gear ring to rotate, and then controls the inner screw cylinder to rotate, thereby controlling the sliding of the positioning clamp to clamp the diaphragm. Continue to control the transmission of the positioning member to pull the diaphragm for continuous automatic traction and pass through between the transmission mechanism and the pressure transmission mechanism;

[0023] Step 5: The first transmission belt and the second transmission belt transmit synchronously and in opposite directions, and stably transmit the solar panels on the first transmission belt to the pressure transmission mechanism through the limit of the second transmission belt. The solar panels contact the middle position of the cutting diaphragm;

[0024] At this time, the positioning member is transmitted to the position of the first rack, the transmission gear ring meshes with the second rack, and the second rack drives the transmission gear ring to rotate in the reverse direction, and then controls the inner screw cylinder to rotate in the reverse direction, thereby controlling the reverse sliding of the positioning clamp, and the diaphragm at this position loses the clamping;

[0025] At the same time, control the opening of the telescopic cylinders on both sides to drive the cutting tool holders on both sides to move towards each other to cut the diaphragm. The diaphragm is separated from the tubular diaphragm, and cooperate with the opening of the blowing device to blow the diaphragm to pour towards the transmission mechanism;

[0026] Cooperate with the synchronous reverse transmission of the upper and lower third transmission belts to drive the upper and lower parts of the diaphragm to be folded on the upper and lower surfaces of the solar panel respectively and transmit them between the upper and lower third transmission belts. The solar panel carries the diaphragm for extrusion transmission and realizes automatic film wrapping of the solar panel;

[0027] Step 6: After the solar panel is film-wrapped, it is transmitted to the stacking rack through the pressure transmission mechanism. Subsequently, control the opening of the lifting electric rail to drive the stacking rack to descend, and place the solar panel at the next reverse position on the solar panel on the stacking rack, so as to realize the positive and negative staggered stacking placement of multiple solar panels without manual stacking. After a group of stacking is completed, lower the whole group of solar panels onto the fourth transmission belt for automatic transmission, which is convenient for subsequent packaging of the solar panels.

[0028] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0029] 1. By setting the traction device, cooperating with the use of the transmission mechanism, the pressure transmission mechanism and the cutting mechanism, the diaphragm is continuously and automatically transmitted and automatically cut, and the solar panel is automatically film-wrapped, which improves the overall processing efficiency of the storage battery.

[0030] 2. By setting up a feeding device, the battery panels placed in positive and negative directions are sequentially transported to the first conveyor belt for transmission. Subsequently, there is no need for manual adjustment of the position for stacking. In cooperation with the use of a deviation correction mechanism to correct the positions of the positive and negative battery panels, the positive and negative battery panels are moved to the middle position of the first conveyor belt, improving the overall processing efficiency of the storage battery.

[0031] 3. By setting up a stacking mechanism, the realization of staggered stacking of multiple battery panels in positive and negative directions is achieved, eliminating the need for manual stacking, further improving the overall processing efficiency of the storage battery, and automatically transporting a group of stacked storage batteries, facilitating the subsequent packaging of the battery panels. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following-described drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0033] Figure 1 It is a schematic structural diagram of the present invention.

[0034] Figure 2 It is a schematic structural diagram of another angle of the present invention.

[0035] Figure 3 For the present invention Figure 2 An enlarged view of part A in the present invention.

[0036] Figure 4 It is a schematic structural diagram of the traction device in the present invention.

[0037] Figure 5 For the present invention Figure 4 An enlarged view of part B in the present invention.

[0038] Figure 6 For the present invention Figure 5 An enlarged view of part C in the present invention.

[0039] Figure 7 For the present invention Figure 4 An enlarged view of part D in the present invention.

[0040] Figure 8 It is a schematic structural diagram of the positioning member in the present invention.

[0041] Figure 9 It is a schematic structural diagram of the cutting mechanism in the present invention.

[0042] Figure 10 It is a schematic structural diagram of the transmission mechanism in the present invention.

[0043] Figure 11 This is a schematic structural diagram of the medium-pressure transmission mechanism in the present invention.

[0044] Figure 12 This is a schematic structural diagram of the stacking mechanism in the present invention.

[0045] Figure 13 This is a schematic structural diagram of the feeding device in the present invention.

[0046] Figure 14 This is a schematic structural diagram of the deviation rectifying mechanism in the present invention.

[0047] In the figure: 1, base; 2, transmission mechanism; 3, medium-pressure transmission mechanism; 4, traction device; 5, stacking mechanism; 6, feeding device; 7, cutting mechanism; 8, limiting plate; 9, deviation rectifying mechanism; 10, third motor; 11, first belt pulley transmission group; 12, second belt pulley transmission group; 41, traction mechanism; 42, traction longitudinal frame; 401, limiting ring groove; 43, traction shaft; 431, traction sprocket; 432, traction chain; 433, first motor; 44, positioning member; 45, first rack; 451, first frame; 46, second rack; 461, second frame; 441, mounting frame; 4411, limiting shaft; 442, positioning outer frame; 443, positioning clamp; 444, inner screw cylinder; 445, threaded rod; 446, transmission gear ring; 71, cylinder frame; 72, telescopic cylinder; 73, cutting tool holder; 74, auxiliary longitudinal frame; 75, blowing device; 21, first longitudinal frame; 211, first transmission roller; 212, first transmission belt; 22, second longitudinal frame; 221, second transmission roller; 222, second transmission belt; 23, first gear; 31, third longitudinal frame; 32, third transmission roller; 321, third transmission belt; 33, second gear; 51, fourth longitudinal frame; 511, fourth transmission roller; 512, fourth transmission belt; 52, first co-driving shaft; 53, lifting electric rail; 531, fixing frame; 54, stacking frame; 61, feeding mechanism; 62, fifth longitudinal frame; 63, fifth transmission roller; 631, fifth transmission belt; 64, fourth motor; 65, second co-driving shaft; 91, mechanism side frame; 92, telescopic rod; 93, deviation rectifying frame. Detailed implementation manners

[0048] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0049] Embodiment: As Figures 1-14As shown in the figure, the present invention provides a production device for a storage battery, which includes a base 1. On one side of the top end of the base 1, a transmission mechanism 2 and a pressing and transmission mechanism 3 are fixedly installed in sequence. A traction device 4 is arranged between the transmission mechanism 2 and the pressing and transmission mechanism 3. A stacking mechanism 5 is arranged at one end of the pressing and transmission mechanism 3 away from the transmission mechanism 2. A feeding device 6 is arranged on one side of the base 1 away from the pressing and transmission mechanism 3. A cutting mechanism 7 is arranged on the traction device 4. A deviation rectifying mechanism 9 is arranged on one side of the transmission mechanism 2 close to the pressing and transmission mechanism 3. A limiting plate 8 is fixedly installed on one side of the top end of the base 1 close to the end of the feeding device 6;

[0050] The traction device 4 includes two traction mechanisms 41 which are symmetrically distributed. The traction mechanism 41 includes a traction longitudinal frame 42. The traction longitudinal frame 42 is fixedly installed on the top end of the base 1. Traction shafts 43 are rotatably installed at the top and middle of the traction longitudinal frame 42. A traction sprocket 431 is fixedly installed in the middle of the traction shaft 43. A traction chain 432 is meshed and connected between the two traction sprockets 431. A first motor 433 is fixedly installed at the top of the traction longitudinal frame 42. The driving end of the first motor 433 and one end of the traction shaft 43 are fixedly installed. A plurality of positioning members 44 are evenly distributed on the traction chain 432. During use, the end of the cylindrical diaphragm is passed through between the transmission mechanism 2 and the pressing and transmission mechanism 3, and the diaphragm is placed between the two traction mechanisms 41. Control the first motors 433 in the two traction mechanisms 41 on both sides to drive the traction shafts 43 and the traction sprockets 431 to rotate, so as to drive the traction chain 432 to transmit, and then control the plurality of positioning members 44 to perform cyclic transmission;

[0051] The positioning member 44 includes a mounting frame 441. The positioning member 44 is fixedly installed on the traction chain 432 through the mounting frame 441. A limiting shaft 4411 is fixedly installed in the middle of the mounting frame 441. A limiting ring groove 401 corresponding to the limiting shaft 4411 is provided on the inner side of the traction vertical frame 42. The end of the limiting shaft 4411 is movably clamped in the corresponding limiting ring groove 401. When multiple positioning members 44 are transmitted, the limiting shaft 4411 slides in the corresponding limiting ring groove 401, thereby improving the transmission stability of the multiple positioning members 44. A positioning outer frame 442 is fixedly installed on the side of the mounting frame 441 away from the traction chain 432. A positioning clamp 443 is slidably clamped in the positioning outer frame 442. An inner screw cylinder 444 is rotatably installed on the side of the positioning outer frame 442 close to the positioning clamp 443. A threaded rod 445 is threadedly installed in the middle of the inner screw cylinder 444. One end of the threaded rod 445 is fixedly installed with the positioning clamp 443. A transmission gear ring 446 is fixedly installed at the end of the inner screw cylinder 444 away from the positioning outer frame 442. A first rack 45 for cooperating with the transmission gear ring 446 is provided at the top of the opposite sides of the two traction mechanisms 41. A first frame 451 is fixedly installed on the outer side of the first rack 45. The first frame 451 is fixedly installed on the outer side of the corresponding traction vertical frame 42. The outer side of the first rack 45 can be meshed and connected with the transmission gear ring 446 in the corresponding positioning member 44. When one of the positioning members 44 is transmitted to the position of the first rack 45, the diaphragm is placed between the positioning outer frame 442 and the positioning clamp 443 in this positioning member 44. Continuing to control the transmission of the positioning member 44, the transmission gear ring 446 and the first rack 45 are meshed. The first rack 45 drives the transmission gear ring 446 to rotate, and then controls the inner screw cylinder 444 to rotate, thereby controlling the positioning clamp 443 to slide and clamp the diaphragm. Continuing to control the transmission of the positioning member 44, the diaphragm is pulled for continuous automatic traction and passes through between the transmission mechanism 2 and the pressing and transmission mechanism 3;

[0052] A second rack 46 for cooperating with the transmission gear ring 446 is provided at the bottom of the opposite sides of the two traction mechanisms 41. A second frame 461 is fixedly installed on the outer side of the second rack 46. The second frame 461 is fixedly installed on the outer side of the corresponding traction vertical frame 42. The inner side of the second rack 46 can be meshed and connected with the transmission gear ring 446 in the corresponding positioning member 44. When the positioning member 44 is transmitted to the position of the first rack 45, the transmission gear ring 446 and the second rack 46 are meshed. The second rack 46 drives the transmission gear ring 446 to rotate in the reverse direction, and then controls the inner screw cylinder 444 to rotate in the reverse direction, thereby controlling the positioning clamp 443 to slide in the reverse direction, and the diaphragm at this position loses the clamping force.

[0053] The cutting mechanism 7 includes two symmetrically distributed cylinder frames 71. The two end parts of the cylinder frame 71 are respectively fixedly installed on the outer tops of the traction vertical frames 42 in the two traction mechanisms 41. A telescopic cylinder 72 is fixedly installed on the cylinder frame 71. The driving end of the telescopic cylinder 72 is fixedly installed with a cutting tool holder 73. The bottom end of one of the cylinder frames 71 is fixedly installed with an auxiliary vertical frame 74. The bottom of the auxiliary vertical frame 74 is fixedly installed with a blowing device 75. Control the opening of the two telescopic cylinders 72 to drive the two cutting tool holders 73 to move towards each other to cut the diaphragm. The diaphragm is separated from the tubular diaphragm, and the blowing device 75 is cooperatively opened to blow the diaphragm towards the transmission mechanism 2.

[0054] The transmission mechanism 2 includes two groups of first vertical frames 21 and one group of second vertical frames 22. The first vertical frames 21 are fixedly installed at the top of the base 1. The second vertical frames 22 are located between the two groups of first vertical frames 21. The second vertical frames 22 are fixedly installed at the top of the base 1 near the pressure transmission mechanism 3. A first transmission roller 211 is rotatably installed on the first vertical frame 21. A first transmission belt 212 is movably sleeved outside the two first transmission rollers 211. A second transmission roller 221 is rotatably installed on the first vertical frame 21 and the second vertical frame 22 near the pressure transmission mechanism 3. A second transmission belt 222 is movably sleeved outside the two second transmission rollers 221. The second transmission belt 222 is located above the first transmission belt 212. First gears 23 are fixedly installed at the ends of the first transmission roller 211 and the second transmission roller 221 near the pressure transmission mechanism 3. The two first gears 23 are meshed and connected. A third motor 10 is fixedly installed on the first vertical frame 21 near the pressure transmission mechanism 3. The driving end of the third motor 10 and one end of the corresponding first transmission roller 211 are fixedly installed. Control the opening of the third motor 10 to drive the first transmission roller 211 to rotate. Cooperating with the meshing connection of the two first gears 23, drive the corresponding second transmission roller 221 to rotate in the reverse direction. Furthermore, control the first transmission belt 212 and the second transmission belt 222 to transmit synchronously and in the reverse direction, and stably transmit the solar panels on the first transmission belt 212 to the pressure transmission mechanism 3 through the limitation of the second transmission belt 222.

[0055] The feeding device 6 includes two feeding mechanisms 61. Each feeding mechanism 61 includes two groups of fifth longitudinal frames 62 that are symmetrically distributed. The feeding mechanism 61 is fixedly installed at the top of the base 1 through the fifth longitudinal frames 62. At the top of each fifth longitudinal frame 62, a fifth transmission roller 63 is rotatably installed. A fifth transmission belt 631 is movably sleeved outside the two fifth transmission rollers 63. The fifth transmission belt 631 and the first transmission belt 212 are vertically distributed. A second co-driving shaft 65 is provided between the two feeding mechanisms 61. The two ends of the second co-driving shaft 65 are respectively fixedly installed with one end of the fifth transmission roller 63 in the corresponding feeding mechanism 61. At the top of one of the fifth longitudinal frames 62, a fourth motor 64 is fixedly installed. The driving end of the fourth motor 64 is fixedly installed with one end of the corresponding fifth transmission roller 63. During use, the front and back placed battery panels are respectively placed on the fifth transmission belt 631 in the corresponding fifth transmission roller 63. Control the fourth motor 64 to start driving the fifth transmission roller 63 to rotate. With the transmission of the second co-driving shaft 65, synchronously drive the fifth transmission belts 631 on both sides to stably transmit. Through the limitation of the limiting plate 8, the front and back placed battery panels are sequentially transmitted to the first transmission belt 212 for transmission. Subsequently, there is no need to manually adjust the position for stacking, improving the overall processing efficiency of the storage battery.

[0056] The deviation rectifying mechanism 9 includes two mechanism side frames 91 that are symmetrically distributed. The mechanism side frames 91 are fixedly installed at the top of the base 1. The first transmission belt 212 is located between the two mechanism side frames 91. At the top of each mechanism side frame 91, a telescopic rod 92 is fixedly installed. The driving ends of the telescopic rods 92 are both fixedly installed with a deviation rectifying frame 93. The two deviation rectifying frames 93 are symmetrically distributed. The front and back battery panels transmitted on the first transmission belt 212 are transmitted between the two deviation rectifying frames 93 on both sides. By controlling the telescopic rods 92 to start driving the deviation rectifying frames 93 to translate, the positions of the front and back battery panels are rectified, and the front and back battery panels are moved to the middle position of the first transmission belt 212.

[0057] The pressing and conveying mechanism 3 includes two groups of third longitudinal frames 31. The third longitudinal frames 31 are fixedly installed at the top of the base 1. Two third conveying rollers 32 are rotatably installed at the top of each of the third longitudinal frames 31. Third conveying belts 321 are movably sleeved on the outer sides of the two horizontally corresponding third conveying rollers 32. Second gears 33 are fixedly installed at the ends of one group of vertically corresponding third conveying rollers 32, and the two second gears 33 are meshed and connected; a first pulley transmission group 11 is provided between a group of adjacent second conveying rollers 221 and third conveying rollers 32. The first pulley transmission group 11 includes two first pulleys and a first belt movably sleeved on the outer sides of the two first pulleys. The two first pulleys are respectively fixedly installed at the ends of the second conveying roller 221 and the third conveying roller 32. While the second conveying roller 221 rotates, with the transmission of the first pulley transmission group 11, the third conveying roller 32 is driven to rotate synchronously. With the meshed connection of the two second gears 33, the upper and lower third conveying belts 321 are driven to transmit synchronously in opposite directions. The battery panel is stably transmitted to the pressing and conveying mechanism 3 through the conveying mechanism 2. The battery panel contacts the middle position of the cutting diaphragm. With the synchronous reverse transmission of the upper and lower third conveying belts 321, the upper and lower parts of the diaphragm are respectively folded on the upper and lower surfaces of the battery panel and transmitted between the upper and lower third conveying belts 321. The battery panel carries the diaphragm for extrusion transmission, and automatic film wrapping of the battery panel is realized, improving the overall processing efficiency of the storage battery;

[0058] The stacking mechanism 5 includes two groups of fourth longitudinal frames 51 symmetrically distributed. The fourth longitudinal frames 51 are fixedly installed at the top of the base 1. Fourth conveying rollers 511 are rotatably installed at the top of each of the fourth longitudinal frames 51. Fourth conveying belts 512 are movably sleeved on the outer sides of the fourth conveying rollers 511 at the same side positions in the two groups of fourth longitudinal frames 51. The fourth conveying belts 512 are located below the third conveying belts 321; a second pulley transmission group 12 is provided between the third conveying roller 32 at the top position and one of the fourth conveying rollers 511. The second pulley transmission group 12 includes two second pulleys and a second belt movably sleeved on the outer sides of the two second pulleys. The two second pulleys are respectively fixedly installed at the ends of the corresponding third conveying roller 32 and fourth conveying roller 511. While the third conveying roller 32 rotates, with the transmission of the second pulley transmission group 12, the fourth conveying roller 511 is controlled to rotate synchronously, and then the fourth conveying belt 512 is controlled to transmit;

[0059] The stacking mechanism 5 further includes two lifting electric rails 53 symmetrically distributed. The lifting electric rails 53 are fixedly installed at one end of the top of the base 1 away from the transmission mechanism 2. A fixing frame 531 is fixedly installed at the driving end of the lifting electric rail 53. A stacking frame 54 is fixedly installed on the fixing frame 531. The stacking frame 54 is located between the two fourth transmission belts 512. A first co-driving shaft 52 is fixedly installed between the two fourth transmission rollers 511 on the side away from the lifting electric rail 53. After the battery panel is coated, it is transmitted to the stacking frame 54 through the pressing transmission mechanism 3. Subsequently, the lifting electric rail 53 is controlled to be turned on to drive the stacking frame 54 to descend, and the battery panel at the next reverse position is placed on the battery panel on the stacking frame 54, so as to realize the positive and negative staggered stacking of multiple battery panels, without manual stacking, further improving the overall processing efficiency of the storage battery. Until a group of stacking is completed, the whole group of battery panels is lowered onto the fourth transmission belt 512 for automatic transmission, facilitating the subsequent packaging of the battery panels.

[0060] A production method of a production device for a storage battery includes the following steps:

[0061] Step 1: Pass the end of the cylindrical diaphragm through between the transmission mechanism 2 and the pressing transmission mechanism 3, and place the diaphragm between the two traction mechanisms 41. Place the battery panels placed in positive and negative directions on the fifth transmission belts 631 in the corresponding fifth transmission rollers 63 respectively;

[0062] Step 2: Control the fourth motor 64 to be turned on to drive the fifth transmission roller 63 to rotate. With the transmission of the second co-driving shaft 65, synchronously drive the two fifth transmission belts 631 on both sides to perform stable transmission. Through the limitation of the limiting plate 8, the battery panels placed in positive and negative directions are sequentially transmitted to the first transmission belt 212 for transmission;

[0063] Transmit the battery panels placed in positive and negative directions on the first transmission belt 212 between the two deviation correction frames 93. By controlling the telescopic rod 92 to be turned on to drive the deviation correction frame 93 to translate, perform position deviation correction on the battery panels placed in positive and negative directions, and move the battery panels placed in positive and negative directions to the middle position of the first transmission belt 212;

[0064] Step 3: Control the third motor 10 to be turned on to drive the first transmission roller 211 to rotate. With the meshing connection of the two first gears 23, drive the corresponding second transmission roller 221 to rotate in the reverse direction. Then control the first transmission belt 212 and the second transmission belt 222 to transmit in the reverse direction synchronously. While the second transmission roller 221 rotates, with the transmission of the first pulley transmission group 11, drive the third transmission roller 32 to rotate synchronously. With the meshing connection of the two second gears 33, drive the upper and lower third transmission belts 321 to transmit in the reverse direction synchronously. While the third transmission roller 32 rotates, with the transmission of the second pulley transmission group 12, control the fourth transmission roller 511 to rotate synchronously. Then control the fourth transmission belt 512 to transmit;

[0065] Step 4: Control the first motor 433 in the traction mechanisms 41 on both sides to drive the traction shaft 43 and the traction sprocket 431 to rotate, thereby driving the traction chain 432 to transmit, and further controlling the multiple positioning members 44 to perform cyclic and stable transmission;

[0066] When one of the positioning members 44 is transmitted to the position of the first rack 45, the diaphragm is placed between the positioning outer frame 442 and the positioning clamp 443 in the positioning member 44. Continue to control the transmission of the positioning member 44. The transmission gear ring 446 meshes with the first rack 45. The first rack 45 drives the transmission gear ring 446 to rotate, and further controls the inner screw cylinder 444 to rotate, thereby controlling the sliding of the positioning clamp 443 to clamp the diaphragm. Continue to control the transmission of the positioning member 44 to pull the diaphragm for continuous automatic traction and pass through between the transmission mechanism 2 and the pressing and transmission mechanism 3;

[0067] Step 5: The first transmission belt 212 and the second transmission belt 222 transmit synchronously and in opposite directions, and stably transmit the solar panels on the first transmission belt 212 to the pressing and transmission mechanism 3 through the limitation of the second transmission belt 222. The solar panels contact the middle position of the cutting diaphragm;

[0068] At this time, the positioning member 44 is transmitted to the position of the first rack 45. The transmission gear ring 446 meshes with the second rack 46. The second rack 46 drives the transmission gear ring 446 to rotate in the reverse direction, and further controls the inner screw cylinder 444 to rotate in the reverse direction, thereby controlling the reverse sliding of the positioning clamp 443. The diaphragm at this position loses the clamping;

[0069] At the same time, control the opening of the telescopic cylinders 72 on both sides to drive the cutting tool holders 73 on both sides to move towards each other to cut the diaphragm. The diaphragm is separated from the tubular diaphragm, and cooperate with the opening of the blowing device 75 to blow the diaphragm towards the transmission mechanism 2;

[0070] Cooperate with the synchronous reverse transmission of the upper and lower third transmission belts 321 to drive the upper and lower parts of the diaphragm to be folded on the upper and lower surfaces of the solar panel respectively and transmit them between the upper and lower third transmission belts 321. The solar panel carries the diaphragm for extrusion transmission and realizes the automatic film wrapping of the solar panel;

[0071] Step 6: After the solar panel is film-wrapped, it is transmitted to the stacking rack 54 through the pressing and transmission mechanism 3. Subsequently, control the opening of the lifting electric rail 53 to drive the stacking rack 54 to descend, and place the solar panel at the next reverse position on the solar panel on the stacking rack 54, so as to realize the stacking of multiple solar panels in a positive and negative staggered manner without manual stacking. After a group of stacking is completed, lower the whole group of solar panels onto the fourth transmission belt 512 for automatic transmission, which is convenient for subsequent packaging of the solar panels.

[0072] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A battery production device, comprising a base (1), characterized in that: A transmission mechanism (2) and a pressure transmission mechanism (3) are fixedly mounted on one side of the top end of the base (1) in sequence; a traction device (4) is arranged between the transmission mechanism (2) and the pressure transmission mechanism (3); a stacking mechanism (5) is arranged on the end of the pressure transmission mechanism (3) away from the transmission mechanism (2); a loading device (6) is arranged on the side of the base (1) away from the pressure transmission mechanism (3); a cutting mechanism (7) is arranged on the traction device (4); a deviation correction mechanism (9) is arranged on the side of the transmission mechanism (2) close to the pressure transmission mechanism (3); and a limiting plate (8) is fixedly mounted on the side of the top end of the base (1) close to the end of the loading device (6); The traction device (4) comprises two symmetrically distributed traction mechanisms (41), the traction mechanism (41) comprises a traction longitudinal frame (42), the traction longitudinal frame (42) is fixedly mounted on the top of the base (1), a traction shaft (43) is rotatably mounted on the top and middle of the traction longitudinal frame (42), a traction sprocket (431) is fixedly mounted on the middle of the traction shaft (43), a traction chain (432) is meshedly connected between the two traction sprockets (431), a first motor (433) is fixedly mounted on the top of the traction longitudinal frame (42), a driving end of the first motor (433) and one end of the traction shaft (43) are fixedly mounted, and a plurality of evenly distributed positioning members (44) are provided on the traction chain (432); The positioning member (44) comprises a mounting frame (441), the positioning member (44) is fixedly mounted on the traction chain (432) via the mounting frame (441), a limiting shaft (4411) is fixedly mounted in the middle of the mounting frame (441), a limiting ring groove (401) corresponding to the limiting shaft (4411) is provided on the inner side of the traction longitudinal frame (42), an end of the limiting shaft (4411) is movably engaged in the corresponding limiting ring groove (401), and the A positioning outer frame (442) is fixedly installed on the side of the mounting frame (441) away from the traction chain (432), a positioning clamp (443) is slidably mounted in the positioning outer frame (442), an inner screw barrel (444) is rotatably installed on the side of the positioning outer frame (442) close to the positioning clamp (443), a threaded rod (445) is threadedly installed in the middle of the inner screw barrel (444), one end of the threaded rod (445) is fixedly installed with the positioning clamp (443), and the inner screw barrel (444) is rotatably installed with the inner screw barrel (444). A transmission gear ring (446) is fixedly installed at one end of the screw barrel (444) away from the positioning outer frame (442); a first rack (45) used in conjunction with the transmission gear ring (446) is provided at the top of the opposite sides of the two traction mechanisms (41); a first frame (451) is fixedly installed on the outer side of the first rack (45); the first frame (451) is fixedly installed on the outer side of the corresponding traction longitudinal frame (42); the outer side of the first rack (45) can be meshed and connected with the transmission gear ring (446) in the corresponding positioning member (44); a second rack (46) used in conjunction with the transmission gear ring (446) is provided at the bottom of the opposite sides of the two traction mechanisms (41); a second frame (461) is fixedly installed on the outer side of the second rack (46); the second frame (461) is fixedly installed on the outer side of the corresponding traction longitudinal frame (42); the inner side of the second rack (46) can be meshed and connected with the transmission gear ring (446) in the corresponding positioning member (44); The cutting mechanism (7) comprises two symmetrically distributed cylinder frames (71), the two ends of the cylinder frames (71) are respectively fixedly mounted on the outer tops of the traction longitudinal frames (42) in the two traction mechanisms (41), a telescopic cylinder (72) is fixedly mounted on the cylinder frames (71), a cutting knife frame (73) is fixedly mounted on the driving end of the telescopic cylinder (72), an auxiliary longitudinal frame (74) is fixedly mounted on the bottom end of one of the cylinder frames (71), and a blowing device (75) is fixedly mounted on the bottom of the auxiliary longitudinal frame (74).

2. The battery production equipment according to claim 1, characterized in that: The transmission mechanism (2) comprises two groups of first longitudinal frames (21) and one group of second longitudinal frames (22), wherein the first longitudinal frames (21) are fixedly mounted on the top of the base (1), the second longitudinal frames (22) are located between the two groups of first longitudinal frames (21), the second longitudinal frames (22) are fixedly mounted on the top of the base (1) near one side of the pressure transmission mechanism (3), a first transmission roller (211) is rotatably mounted on the first longitudinal frames (21), the outer movable sleeves of the two first transmission rollers (211) are provided with first transmission belts (212), and the second transmission belts (212) are arranged near the pressure transmission mechanism (3). A second transmission roller (221) is rotatably mounted on the first vertical frame (21) and the second vertical frame (22) at one side of the pressure transmission mechanism (3); a second transmission belt (222) is movably sleeved on the outer sides of the two second transmission rollers (221); the second transmission belt (222) is located above the first transmission belt (212); a first gear (23) is fixedly mounted on the ends of the first transmission roller (211) and the second transmission roller (221) near the one side of the pressure transmission mechanism (3); and the two first gears (23) are meshed and connected.

3. The battery production equipment according to claim 2, characterized in that: The pressure transmission mechanism (3) comprises two groups of third longitudinal frames (31), the third longitudinal frames (31) are fixedly mounted on the top of the base (1), two third transmission rollers (32) are rotatably mounted on the top of the third longitudinal frames (31), third transmission belts (321) are movably sleeved on the outer sides of the two third transmission rollers (32) corresponding to the horizontal direction, and a second gear (33) is fixedly mounted on the end of one group of the third transmission rollers (32) corresponding to the vertical direction, and the two second gears (33) are meshingly connected.

4. The battery production equipment according to claim 3, characterized in that: The stacking mechanism (5) comprises two groups of symmetrically distributed fourth vertical frames (51), the fourth vertical frames (51) being fixedly mounted on the top of the base (1), the tops of the fourth vertical frames (51) being rotatably mounted with fourth transmission rollers (511), the outer sides of the fourth transmission rollers (511) at the same side position in the two groups of the fourth vertical frames (51) being movably sleeved with fourth transmission belts (512), the fourth transmission belts (512) being located below the third transmission belts (321).

5. The battery production equipment according to claim 4, characterized in that: The stacking mechanism (5) further comprises two symmetrically distributed lifting rails (53), wherein the lifting rails (53) are fixedly mounted at one end of the top of the base (1) away from the transmission mechanism (2), a fixed frame (531) is fixedly mounted at the driving end of the lifting rails (53), a stacking frame (54) is fixedly mounted on the fixed frame (531), the stacking frame (54) is located between two fourth transmission belts (512), and a first co-drive shaft (52) is fixedly mounted between two fourth transmission rollers (511) at one side away from the lifting rails (53).

6. The battery production equipment according to claim 5, characterized in that: A third motor (10) is fixedly mounted on a first longitudinal frame (21) at a position close to one side of the pressure transmission mechanism (3); a driving end of the third motor (10) is fixedly mounted to one end of a corresponding first transmission roller (211); a first pulley transmission group (11) is provided between a group of the second transmission rollers (221) and the third transmission rollers (32) at adjacent positions; the first pulley transmission group (11) comprises two first pulleys and a first belt movably sleeved on the outside of the two first pulleys; the two first pulleys are respectively fixedly mounted on the ends of the second transmission roller (221) and the third transmission roller (32); a second pulley transmission group (12) is provided between the third transmission roller (32) and one of the fourth transmission rollers (511) at the top position; the second pulley transmission group (12) comprises two second pulleys and a second belt movably sleeved on the outside of the two second pulleys; the two second pulleys are respectively fixedly mounted on the ends of the corresponding third transmission roller (32) and the fourth transmission roller (511).

7. The battery production equipment according to claim 6, characterized in that: The feeding device (6) comprises two feeding mechanisms (61), wherein the feeding mechanisms (61) comprise two groups of fifth longitudinal frames (62) which are symmetrically distributed. The feeding mechanisms (61) are fixedly mounted on the top of the base (1) through the fifth longitudinal frames (62). A fifth transmission roller (63) is rotatably mounted on the top of each of the fifth longitudinal frames (62). A fifth transmission belt (631) is movably sleeved on the outer sides of the two fifth transmission rollers (63). The fifth transmission belt (631) and the first transmission belt (212) are vertically distributed. A second co-driving shaft (65) is arranged between the two feeding mechanisms (61). The two ends of the second co-driving shaft (65) are respectively fixedly mounted on one end of the fifth transmission roller (63) in the corresponding feeding mechanism (61). A fourth motor (64) is fixedly mounted on the top of one of the fifth longitudinal frames (62). The driving end of the fourth motor (64) is fixedly mounted on one end of the corresponding fifth transmission roller (63).

8. The battery production equipment according to claim 7, characterized in that: The deflection correcting mechanism (9) comprises two symmetrically distributed mechanism side frames (91), wherein the mechanism side frames (91) are fixedly mounted on the top of the base (1), the first transmission belt (212) is located between the two mechanism side frames (91), a telescopic rod (92) is fixedly mounted on the top of each mechanism side frame (91), a deflection correcting frame (93) is fixedly mounted on the driving end of each telescopic rod (92), and the two deflection correcting frames (93) are symmetrically distributed.

9. A production method using the battery production equipment according to claim 8, characterized in that: The steps include: Step 1: Pass the end of the cylindrical diaphragm through the transmission mechanism (2) and the pressure transmission mechanism (3), and place the diaphragm between the two traction mechanisms (41), and place the solar panels placed in the front and back directions on the fifth transmission belt (631) in the corresponding fifth transmission roller (63); Step 2: Control the fourth motor (64) to start driving the fifth transmission roller (63) to rotate, cooperate with the transmission of the second co-drive shaft (65), and synchronously drive the fifth transmission belts (631) on both sides to perform stable transmission, and through the limit of the limit plate (8), the solar panels placed in front and back are sequentially transmitted to the first transmission belt (212) for transmission; The positive and negative battery panels transmitted on the first transmission belt (212) are transmitted to between the deviation correction frames (93) on both sides, and the deviation correction frames (93) are driven to move in translation by controlling the opening of the telescopic rod (92), so as to correct the position of the positive and negative battery panels and move the positive and negative battery panels to the middle position of the first transmission belt (212); Step 3, control the third motor (10) to start and drive the first transmission roller (211) to rotate, cooperate with the meshing connection of the two first gears (23), drive the corresponding second transmission roller (221) to rotate in the opposite direction, and then control the first transmission belt (212) and the second transmission belt (222) to synchronously transmit in the opposite direction. When the second transmission roller (221) rotates, cooperate with the transmission of the first pulley transmission group (11) to drive the third transmission roller (32) to rotate synchronously, cooperate with the meshing connection of the two second gears (33), drive the upper and lower third transmission belts (321) to transmit in the opposite direction. When the third transmission roller (32) rotates, cooperate with the transmission of the second pulley transmission group (12) to control the fourth transmission roller (511) to rotate synchronously, and then control the fourth transmission belt (512) to transmit; Step 4: Control and open the first motor (433) in the traction mechanism (41) on both sides to drive the traction shaft (43) and the traction sprocket (431) to rotate, thereby driving the traction chain (432) to transmit, and then controlling the multiple positioning members (44) to perform cyclic and stable transmission; When one of the positioning members (44) is transmitted to the position of the first rack (45), the diaphragm is placed between the positioning outer frame (442) and the positioning clamp (443) in the positioning member (44), the positioning member (44) is continuously controlled to be transmitted, the transmission gear ring (446) and the first rack (45) are meshed, the first rack (45) drives the transmission gear ring (446) to rotate, and then controls the inner screw barrel (444) to rotate, thereby controlling the positioning clamp (443) to slide, clamping the diaphragm, and continuously controlling the positioning member (44) to be transmitted, pulling the diaphragm for continuous automatic traction, and passing through between the transmission mechanism (2) and the pressure transmission mechanism (3); Step 5: The first transmission belt (212) and the second transmission belt (222) are synchronously transmitted in the opposite direction, and the solar panel on the first transmission belt (212) is stably transmitted to the pressure transmission mechanism (3) through the limit of the second transmission belt (222), and the solar panel contacts the middle position of the cutting diaphragm; At this time, the positioning member (44) is transmitted to the position of the first rack (45), the transmission gear ring (446) is meshed with the second rack (46), and the second rack (46) drives the transmission gear ring (446) to rotate in the opposite direction, thereby controlling the inner screw barrel (444) to rotate in the opposite direction, thereby controlling the positioning clamp (443) to slide in the opposite direction, and the diaphragm at this position loses its clamping; At the same time, the telescopic cylinders (72) on both sides are controlled to drive the cutting tool holders (73) on both sides to move towards each other, so as to cut the diaphragm, and the diaphragm is separated from the cylindrical diaphragm, and the blowing device (75) is turned on to blow the diaphragm to tilt it toward the transmission mechanism (2); Cooperating with the upper and lower third transmission belts (321) for synchronous reverse transmission, the upper and lower parts of the diaphragm are driven to be folded on the upper and lower surfaces of the battery panel respectively, and transmitted between the upper and lower third transmission belts (321), the battery panel carries the diaphragm for extrusion transmission, and the automatic film coating of the battery panel is realized; Step 6: After the solar panels are coated, they are transferred to the stacking rack (54) through the pressure transmission mechanism (3). Then, the lifting rail (53) is controlled to drive the stacking rack (54) to descend, and the solar panels in the next reverse position are placed on the solar panels on the stacking rack (54). In this way, multiple solar panels are stacked in a positive and negative staggered manner without manual stacking. After a group of panels is stacked, the entire group of solar panels is lowered and placed on the fourth transmission belt (512) for automatic transmission, which is convenient for subsequent packaging of solar panels.

Citation Information

Patent Citations

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